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Shaker K(+)-channels are predicted to reduce the metabolic cost of neural information in Drosophila photoreceptors.

机译:摇床K(+)通道预计将减少果蝇感光器中神经信息的代谢成本。

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摘要

Shaker K(+)-channels are one of several voltage-activated K(+)-channels expressed in Drosophila photoreceptors. We have shown recently that Shaker channels act as selective amplifiers, attenuating some signals while boosting others. Loss of these channels reduces the photoreceptor information capacity (bits s(-1)) and induces compensatory changes in photoreceptors enabling them to minimize the impact of this loss upon coding natural-like stimuli. Energy as well as coding is also an important consideration in understanding the role of ion channels in neural processing. Here, we use a simple circuit model that incorporates the major ion channels, pumps and exchangers of the photoreceptors to derive experimentally based estimates of the metabolic cost of neural information in wild-type (WT) and Shaker mutant photoreceptors. We show that in WT photoreceptors, which contain Shaker K(+)-channels, each bit of information costs approximately half the number of ATP molecules than each bit in Shaker photoreceptors, in which lack of the Shaker K(+)-channels is compensated by increased leak conductance. Additionally, using a Hodgkin-Huxley-type model coupled to the circuit model we show that the amount of leak present in both WT and Shaker photoreceptors is optimized to both maximize the available voltage range and minimize the metabolic cost.
机译:摇床K(+)通道是果蝇感光器中表达的几个电压激活的K(+)通道之一。我们最近发现,振荡器通道可作为选择性放大器,在衰减某些信号的同时增强其他信号。这些通道的丢失会降低感光器的信息容量(位s(-1)),并引起感光器的补偿性变化,使它们能够将这种损耗对编码自然样刺激的影响降至最低。能量和编码也是理解离子通道在神经处理中的作用的重要考虑因素。在这里,我们使用一个简单的电路模型,该模型结合了感光器的主要离子通道,泵和交换器,以得出基于实验的野生型(WT)和Shaker突变型感光器神经信息的代谢成本估算值。我们表明,在包含Shaker K(+)通道的WT感光器中,每位信息花费的ATP分子数量比Shaker感光器中每一位的信息消耗的ATP分子数量大约一半,其中Shaker K(+)通道的缺乏得到补偿通过增加泄漏电导率。此外,使用与电路模型耦合的霍奇金-赫克斯利(Hodgkin-Huxley)型模型,我们发现WT和Shaker感光器中均存在的泄漏量已得到优化,以最大化可用电压范围并最小化代谢成本。

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